Problem: p(0()) -> 0() p(s(x)) -> x minus(x,0()) -> x minus(x,s(y)) -> minus(p(x),y) Proof: Bounds Processor: bound: 2 enrichment: match automaton: final states: {4,3} transitions: minus1(6,2) -> 4* minus1(6,1) -> 4* p1(2) -> 6* p1(6) -> 6* p1(1) -> 6* 01() -> 6,3 02() -> 6,4 p0(2) -> 3* p0(1) -> 3* 00() -> 1* s0(2) -> 2* s0(1) -> 2* minus0(1,2) -> 4* minus0(2,1) -> 4* minus0(1,1) -> 4* minus0(2,2) -> 4* 1 -> 6,4,3 2 -> 6,4,3 6 -> 4* problem: Qed